Sáenz-Rivera Juán, Sarath Gautam, Arredondo-Peter Raúl
Laboratorio de Biofísica y Biología Molecular, Facultad de Ciencias, Universidad Autónoma del Estado de Morelos, Avenida Universidad 1001, Colonia Chamilpa, 62210 Cuernavaca, Morelos, Mexico.
Plant Physiol Biochem. 2004 Dec;42(11):891-7. doi: 10.1016/j.plaphy.2004.11.003. Epub 2005 Jan 18.
The tertiary structure of a maize (Zea mays ssp. mays) non-symbiotic hemoglobin (Hbm) was modeled using computer tools and the known tertiary structure of rice Hb1 as a template. This method was tested by predicting the tertiary structure of soybean leghemoglobin a (Lba) using rice Hb1 as a template. The tertiary structures of the predicted and native Lba were similar, indicating that our computer methods could reliably predict the tertiary structures of plant Hbs. We next predicted the tertiary structure of Hbm. Hbm appears to have a long pre-helix A and a large CD-loop. The positions of the distal and proximal His are identical in Hbm and rice Hb1, which suggests that heme-Fe is hexacoordinate in Hbm and that the kinetic properties of Hbm and rice Hb1 are expected to be very similar, i.e. that Hbm has a high O2-affinity. Thermostability analysis showed that Hbm CD-loop is unstable and may provide mobility to amino acids located at the heme pocket for both ligand binding and stabilization and heme-Fe coordination. Analysis of the C-terminal half of Hbm showed the existence of a pocket-like region (the N/C cavity) where interactions with organic molecules or proteins could be possible. Lys K94 protrudes into the N/C cavity, suggesting that K94 may sense the binding of molecules to the N/C cavity. Thus, it is likely that the instability of the CD-loop and the possibility of binding molecules to the N/C cavity are essential for positioning amino acids in the heme pocket and in regulating Hbm activity and function.
利用计算机工具并以水稻Hb1已知的三级结构为模板,对玉米(玉米亚种)非共生血红蛋白(Hbm)的三级结构进行了建模。通过以水稻Hb1为模板预测大豆豆血红蛋白a(Lba)的三级结构对该方法进行了测试。预测的Lba三级结构与天然Lba相似,这表明我们的计算机方法能够可靠地预测植物血红蛋白的三级结构。接下来,我们预测了Hbm的三级结构。Hbm似乎有一个长的前螺旋A和一个大的CD环。Hbm中远端和近端组氨酸的位置与水稻Hb1相同,这表明Hbm中的血红素铁是六配位的,并且预计Hbm和水稻Hb1的动力学性质非常相似,即Hbm具有高氧亲和力。热稳定性分析表明,Hbm的CD环不稳定,可能为位于血红素口袋中的氨基酸提供移动性,以利于配体结合、稳定以及血红素铁配位。对Hbm C端一半的分析显示存在一个口袋状区域(N/C腔),在该区域可能与有机分子或蛋白质发生相互作用。赖氨酸K94伸入N/C腔,这表明K94可能感知分子与N/C腔的结合。因此,CD环的不稳定性以及分子与N/C腔结合的可能性对于血红素口袋中氨基酸的定位以及调节Hbm的活性和功能可能至关重要。